The present disclosure relates to a plug-in module connector or the electrically conductive connection of at least two battery modules, including a flexible busbar for the electrically conductive connection of respective poles of the battery modules, the busbar enabling tolerance compensation with respect to the poles in the transverse direction of the module connector; two retaining clamps for gripping the busbar and one of the respective poles of the battery modules, the retaining clamps enabling tolerance compensation with respect to the poles in the longitudinal direction and vertical direction of the module connector; an insulation housing in which the retaining clamps plugged onto the busbar can be received. Furthermore, the present disclosure also concerns a method for the electrically conductive connection of at least two battery modules by means of a plug-in module connector.
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1. A plug-in module connector for making an electrical connection of at least two battery modules, the plug-in module connector comprising:
a flexible busbar configured to electrically conductive connection of poles of the battery modules, wherein the busbar enables tolerance compensation with respect to the poles in a transverse direction of the module connector;
two retaining clamps arranged to encompass the busbar and one of the respective poles of the battery modules, whereby the retaining clamps include a tolerance adjustment with respect to the poles in a longitudinal direction and vertical direction of the module connector 10; and
an insulation housing configured to accommodate the retaining clamps plugged onto the electric busbar.
7. A connection system for making an electrical connection of at least two battery modules, the system comprising:
a plug-in module connector comprising flexible busbar configured to electrically conductive connection of poles of the battery modules, wherein the busbar 20 enables tolerance compensation with respect to the poles in a transverse direction of the module connector; two retaining clamps arranged to encompass the busbar and one of the respective poles of the battery modules, whereby the retaining clamps include a tolerance adjustment with respect to the poles in a longitudinal direction and vertical direction of the module connector 10; and an insulation housing configured to accommodate the retaining clamps plugged onto the electric busbar; and
at least two contact protection caps for respective poles of the battery modules.
11. A method for forming an electrical connection of at least two battery modules, the method comprising the steps of:
configuring a flexible busbar to form an electrical connection of poles of the battery modules, wherein the busbar enables tolerance compensation with respect to the poles in a transverse direction of the module connector;
a arranging two retaining clamps to encompass the busbar and one of the respective poles of the battery modules, whereby the retaining clamps include a tolerance adjustment with respect to the poles in a longitudinal direction and vertical direction of the module connector 10;
configuring an insulation housing to accommodate the retaining clamps plugged onto the electric busbar; and
wherein the module connector is pre-assembled by arranging the retaining damps of the module connector, which are plugged onto the busbar of the module connector, in the insulation housing of the module connector, after which the pre-assembled module connector is plugged onto the respective poles of the battery modules for the electrically conductive connection to of the batter modules.
2. The plug-in module connector according to
3. The plug-in module connector according to
4. The plug-in module connector according to
5. The plug-in module connector according to
6. The plug-in module connector according to
8. The connection system according to
9. The connection system according to
10. The connection system according to
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This application is a national phase application of International Application No. PCT/EP2019/060901, filed on Apr. 29, 2019, and claims the priority benefit of German Application 10 2018 114 764.3, filed on Jun. 20, 2018, the content of both of which is incorporated herein by reference.
The present disclosure relates to a plug-in module connector and a method for electrically connecting at least two battery modules. Furthermore, the disclosure also relates to a connection system for the electrically conductive connection of at least two battery modules, including a plug-in module connector and at least two contact protection caps for poles of the battery modules.
Particularly in high-voltage storage systems for motor vehicles, several battery cells are often combined and connected to individual battery modules. These types of battery modules then have to be connected to each other electrically and conductively, i.e., to be contacted with one another. Generally, busbars are used for this purpose, by means of which the respective battery modules are contacted and connected to each other by means of screw connections. However, such an approach requires a relatively high amount of assembly time. In addition, it is necessary, among other things, that tolerance compensation be ensured for when connecting such battery modules due to manufacturing tolerances is desired.
It is an object of the present disclosure to provide a solution by means of which, on the one hand, battery modules can be connected to each other particularly simply and electrically and, on the other hand, tolerance compensation can be ensured when the battery modules are connected.
This and other objects of the present disclosure are solved by means of a plug-in module connector as well as by means of an electrically conductive connection of at least two battery modules with the characteristics of the independent claims. Advantageous designs with appropriate and non-trivial developments of the disclosure are further set out in the dependent claims.
The plug-in module connector for the electrically conductive connection of at least two battery modules, according to the invention, comprises a flexible busbar for the electrically conductive connection of respective poles of the battery modules, wherein the busbar enables a tolerance balance with respect to the poles in the transverse direction of the module connector. In addition, the plug-in module connector includes two clamps for embracing the busbar and one of the respective poles of the battery modules, whereby the clamps allow for tolerance compensation with respect to the poles in the longitudinal and vertical direction of the module connector. Furthermore, the plug-in module connector includes an insulation housing in which the retaining clamps attached to the busbar can be accommodated.
The flexible busbar may not only be made of, for example, copper, but also from other well-conducting materials as well. With the busbar being flexible, especially in the transverse direction of the module connector, the busbar can compensate for tolerances in the transverse direction of the plug-in module connector with respect to the poles of the battery modules to be connected to one another. When connecting two battery modules in an electrically conductive manner, it can happen that the poles connected to each other are arranged slightly differently in the transverse direction of the module connector due to manufacturing tolerances. The flexible busbar makes it particularly simple to provide tolerance compensation in this regard.
The two clamps can be U-shaped, for example, so that they can be easily plugged into the poles of the battery modules via the busbar as well as when the module connector is plugged in. Due to the shape of the retaining clamps, a tolerance compensation in the vertical direction and in the longitudinal direction of the plug-in module connector is possible for the electrically conductive connection of at least two battery modules. For example, poles that are positioned differently in the longitudinal direction to each other can be easily connected by means of the same plug-in module connector, because a tolerance compensation in the longitudinal and vertical direction is given by the two retaining clamps.
In addition, it is also possible for the insulation housing to accommodate movement or displacement of the flexible busbar in the transverse direction of the plug-in module connector. The insulation housing can be, for example, an injection-molded part that can be produced in large quantities and at particularly low cost. The retaining clamps themselves preferably have a spring effect, so that between them the electric busbar can be reliably received and fixed as well as can the poles of the respective battery modules.
Between the flexible busbar and the poles, full-surface contact can be made. Depending on the distance between the poles in the longitudinal direction, the poles can lie against the flexible busbar at different positions relative to the longitudinal direction, thus allowing for a tolerance compensation in the longitudinal direction of the plug-in module connector. The retaining clamps, which preferably form retaining springs, can be mounted differently in the vertical direction depending on the relative position of the poles to each other so as to compensate for tolerance in the high direction of the plug-in module connector. The flexible busbar and the respective poles of the battery modules are pressed together over their entire surface by the retaining springs.
Thanks to the flexible and plug-in module connector, an assembly time for the electrically conductive connection of at least two battery modules can be considerably reduced, as the plug-in module connector simply has to be plugged onto the poles of the battery modules. In addition, the plug-in module connector makes it possible to compensate for tolerances of several millimeters on the poles of the battery modules serving as module connections in individual spatial directions. By means of such plug-in module connectors, it is possible, for example, to connect a large number of battery modules with each other in a very short time and to compensate for tolerances in all three spatial directions with regard to the relative positioning of the poles of the respective battery modules to be connected with each other. In addition to facilitating battery assembly, the plug-in module connector also makes it possible to increase the added value for a battery manufacturer.
An advantageous embodiment of the present disclosure is that the insulation housing has at least one opening for the insertion of a tool by means of which the retaining clamps can be expanded. This makes it easy to attach the plug-in module connector to the respective poles of the battery modules to be connected with each other, either powerlessly or without effort, for example by means of a robot. Through the opening in the insulation housing, the tool can be inserted to expand the respective retaining clamps. Plugging the module connector onto the poles of the battery modules to be contacted ensures that no or almost no force is applied to the poles. When connecting the module connector to the poles of the battery modules to be contacted with one another, it is possible to ensure that no or virtually no force is exerted on the poles.
Another advantage of the present disclosure is that the flexible busbar comprises several sheets of metal layered on top of one another. For example, the flexible busbar can be made of several copper sheets or copper foils with a material thickness of 0.2 millimeters. The fact that the flexible busbar comprises several sheets layered on top of one another allows the individual sheets to slide against each other, making it particularly easy to bend or deform the busbar in the transverse direction of the module connector, so that relatively small forces act on the respective poles of the battery modules when compensating for tolerances in the transverse direction of the module connector.
According to further advantages set out in the present disclosure, it is intended that the plates are pressure welded at respective longitudinal ends of the busbar and thus form solid connection areas. At those points where the contact is made between the flexible busbar and the respective poles of the battery modules, there are thus massive connection areas. This results in particularly good current-conducting capabilities, especially with regard to the respective resistance and current-carrying cross sections.
In a further advantageous embodiment of the present disclosure, it is provided that the insulation housing has at least one latching element for forming a latching connection with the busbar. This allows the busbar to be easily and reliably arranged and pre-assembled within the insulation housing.
A further advantageous embodiment of the present disclosure entails the insulation housing being at least one latching element for forming a latching connection with respective retaining clamps. This makes it easy and reliable to pre-assemble and fix the respective retaining clamps within the insulation housing.
The connection system according to the disclosure for the electrically conductive connection of at least two battery modules comprises the plug-in module connector according to the invention or an advantageous design of the plug-in module connector as well as at least two contact protection caps for the respective poles of the battery modules. When mounting or connecting the battery modules by means of the plug-in module connector, the contact protection caps can release the respective poles of the battery modules. Before connecting or mounting the battery modules in an electrically conductive manner, the contact protection caps can ensure that the poles of the battery modules are protected by turning the contact protection caps around respective poles of the battery modules.
Another advantageous design of the connection system is that the protection caps on the battery modules can are movable between a release position releasing the poles and a protective position surrounding the poles. This allows the contact protection caps to be easily moved into the release position if required, so that the poles can be connected to each other in an electrically conductive manner using the plug-in module connector. As long as the battery modules are not yet electrically connected to each other by means of the plug-in module connector, the contact protection caps can be arranged in their protective position surrounding the respective poles.
According to a further advantageous design of the connection system, it is provided that the contact protection caps each have at least one spring element by means of which the contact protection caps lock in their protective position on a housing part of the battery modules. In this way, it can be reliably ensured that the contact protection caps cannot be moved away from their protective positions without the effect of application of force to the spring elements.
An additional advantageous design of the connection system is that the insulation housing of the plug-in module connector has one receiver per contact protection cap by means of which the respective contact protection cap can be moved from the release position into the protection position when the module connector is removed from the poles against a plug-in direction after being plugged onto them. This automatically ensures that as soon as the module connector is again removed from the poles, it is surrounded by the contact protection caps. The contact protection caps can be made of polyamide, for example, and are held in their upper end position, which corresponds to the protective position, by the spring elements. When the module connector is pushed on or plugged on, the contact protection caps are pressed down by overcoming a respective spring force of the spring elements. In a lower end position, which corresponds to the release position, the drivers of the insulation housing can pull or move the contact protection caps back up into their protective position when the module connector is removed. Preferably, the insulation housing is provided with a respective release for each driver, so that the module connector can be easily released from the protective caps after removing it from the poles.
In the inventive method for the electrically conductive connection of at least two battery modules by means of the inventive plug-in module connector or an advantageous version of the plug-in module connector, the module connector is first pre-assembled by arranging the holding clamps of the module connector, which are placed on the busbar of the module connector, in the insulation housing of the module connector, after which the pre-assembled module connector for the electrically conductive connection of the battery modules is plugged in the respective poles of the battery modules. Advantageous designs of the plug-in module connector and/or the connection system are to be regarded as advantageous configurations of the method according to the present disclosure, whereby the plug-in module connector and/or the connection system have means for carrying out the method steps.
Further advantages features and details of the invention arise from the subsequent description of a preferred embodiment as well as from the drawings. The features and combinations of features mentioned above in the description, as well as the features and combinations of features shown in the description of the figure and/or in the figures alone are usable not only in the combination indicated in each case, but also in other combinations or on their own without leaving the scope of the invention.
Further advantages features and details of the various embodiments of this disclosure will become apparent from the ensuing description of a preferred exemplary embodiment or embodiments and further with the aid of the drawings. The features and combinations of features recited below in the description, as well as the features and feature combination shown after that in the drawing description or in the drawings alone, may be used not only in the particular combination recited but also in other combinations on their own without departing from the scope of the disclosure.
In the following, advantageous examples of the invention are set out with reference to the accompanying drawings, wherein:
As used throughout the present disclosure, unless specifically stated otherwise, the term “or” encompasses all possible combinations, except where infeasible. For example, the expression “A or B” shall mean A alone, B alone, or A and B together. If it is stated that a component includes “A, B, or C”, then, unless specifically stated otherwise or infeasible, the component may include A, or B, or C, or A and B, or A and C, or B and C, or A and B and C. Expressions such as “at least one of” do not necessarily modify an entirety of the following list and do not necessarily modify each member of the list, such that “at least one of “A, B, and C” should be understood as including only one of A, only one of B, only one of C, or any combination of A, B, and C.
In the figures, the same or functionally identical elements have been provided with the same reference signs.
A plug-in module connector 10 for an electrically conductive connection of two battery modules 12,14 is shown in an exploded view in
During installation of the high-voltage storage tank or the high-voltage batteries, the individual modules 12 and 14 must again be electrically connected to each other or interconnected. By means of the plug-in module connector 10 it is possible to connect the respective poles 16 and 18 of the battery modules 12 and 14 in an especially time-saving and simple manner. For this purpose, the plug-in module connector 10 must only be plugged onto the poles 16 and 18. Due to manufacturing tolerances, for example, it is possible that poles 16 and 18 are not always arranged at the same relative position to each other. Therefore, the plug-in module connector 10 is designed in such a way that it can realize tolerance compensation in all three spatial directions, in longitudinal direction x, transverse direction y and in vertical direction z of the plug-in module connector 10.
The plug-in module connector 10 comprises a flexible busbar 20 for electrically conductive connection of the poles 16 and 18 of the battery modules 12 and 14. The busbar 20 can provide tolerance compensation with respect to poles 16 and 18 in the transverse direction y of module connector 10. The flexible busbar 20 can, for example be made of several copper sheets or copper foils layered on top of each other, which are not shown in detail here. The individual copper sheets or copper foils can, for example, have a thickness of 0.2 millimeters. The respective longitudinal ends 22 serving as connection ends can be converted into solid connecting pieces, for example by pressure welding. In other words, the individual sheets or foils, which are layered on top of each other, can be pressure-welded in the area of the respective longitudinal ends, thus forming solid connection areas.
The plug-in module connector 10 also includes two retaining clamps 24, which are U-shaped as in the case shown here. The retaining clamps 24 are used to enclose the busbar 20 and one of the respective poles 16 and 18 of the battery modules 12 and 14. The retaining clamps 24 allow tolerance compensation of the plug-in module connector 10 with respect to the relative positioning of the poles 16 and 18 in the longitudinal direction x and in the vertical direction z of the module connector 10. The retaining clamps 24 serving as retaining springs can be made of spring steel, for example, so that the retaining clamps 24 can exert a sufficiently high contact pressure in the transverse direction y on the busbar 20 and the poles 16 and 18. The flexible busbar 20 and the poles 16 and 18 are pressed together over their entire surface by the retaining clamps 24, which serve as retaining clips.
The plug-in module connector 10 also includes an insulation housing 26, in which the retaining clamps 24, which are attached to the busbar 20, can be accommodated. The insulation housing 26 can be an injection-molded part, so that it can be produced in large quantities and at a particularly low cost. The insulation housing 26 includes respective openings for the insertion of a tool, not shown here, which can be used to expand the retaining clamps 24.
For the electrically conductive connection of the two battery modules 12 and 14, the plug-in module connector 10, shown here in exploded view, is first pre-assembled. For this purpose, the retaining clamps 24 and the busbar 20 are arranged inside the insulation housing 26. The retaining clamps 24 in the insulation housing 26 may, for example, be first arranged, after which the busbar 20 is pushed into the retaining clamps 24. Alternatively, it is also possible, for example, to first push the retaining clamps 24 onto the busbar 20 and then to arrange this assembly inside the insulation housing 26.
The pre-assembled module connector 10 is then plugged onto the respective poles 16 and 18 for electrically conductive connection of the battery modules 12 and 14. Before the fitting operation, the module connector can be inserted through the openings 28 to expand the two retaining clamps 24. As a result, the poles 16 and 18 can be pushed more or less without force or at least without increased effort into the holding clamps 24 and thus brought into contact with the busbar 20.
In
The busbar 20 and the poles 16 and 18 (not visible here) are pressed together over their entire surface by the retaining clamps 24 which serve as retaining springs. When the U-shaped retaining clamps 24 are pushed on, tolerance compensation in the vertical direction z of the plug-in module connector 10 is made possible. The flexible busbar 20 also enables tolerance compensation in the transverse direction y, as the busbar 20 can bend much more easily and further in the transverse direction y than in the other spatial directions.
In
In
In
In
When the plug-in module connector 10 is plugged into or out of the contact caps 38, the spring elements 40 are pressed inwards, and as a result the grip on the contact caps 38 is loosened. Thus, the contact protection caps 38 can slide downwards in the vertical direction z and the poles 16 and 18 can be released for contact with the plug-in module connector 10.
In
Having described some aspects of the present disclosure in detail, it will be apparent that further modifications and variations are possible without departing from the scope of the disclosure. All matter contained in the above description and shown in the accompanying drawings shall be interpreted as illustrative and not in a limiting sense.
Saller, Robert, Rieder, Stefan, Krebs, Annika
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